The Willmore energy and curvature concentration

Fuente: arXiv
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Main Authors: Kupferman, Raz, Maor, Cy, Padilla-Garza, David
Format: Preprint
Published: 2025
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author Kupferman, Raz
Maor, Cy
Padilla-Garza, David
author_facet Kupferman, Raz
Maor, Cy
Padilla-Garza, David
contents We study isometric immersions of a Riemannian surface $(Ω,\frak{g})$, where $Ω\subset \mathbb{R}^2$, into $\mathbb{R}^3$. We consider their bending energy, i.e., the square of the $L^2$-norm of their second fundamental form, which is equivalent to the Willmore functional. We obtain two new lower bounds for this energy, one in terms of the Gaussian curvature of the surface, and the other in terms of a Burgers vector -- a measure of non-flatness connected to torsion. These new estimates provide optimal blowup rates of the energy when the curvature is concentrated (e.g., in a conical geometry). In the more subtle case of dipoles of concentrated curvature, we use the Burgers vector estimates to obtain an optimal blowup rate in terms of the size of the system. Our motivation comes from non-Euclidean elasticity, in which cones and curvature-dipoles play a central role. The lower bounds derived in this work directly yield lower bounds for the elastic energy of thin elastic sheets. The derivation of the curvature-based lower bound involves an isoperimetric inequality for framed loops, which we believe to be of independent interest.
format Preprint
id arxiv_https___arxiv_org_abs_2511_18982
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The Willmore energy and curvature concentration
Kupferman, Raz
Maor, Cy
Padilla-Garza, David
Differential Geometry
Analysis of PDEs
49Q10, 49S05, 53C21, 53Z05, 74K20, 74K25
We study isometric immersions of a Riemannian surface $(Ω,\frak{g})$, where $Ω\subset \mathbb{R}^2$, into $\mathbb{R}^3$. We consider their bending energy, i.e., the square of the $L^2$-norm of their second fundamental form, which is equivalent to the Willmore functional. We obtain two new lower bounds for this energy, one in terms of the Gaussian curvature of the surface, and the other in terms of a Burgers vector -- a measure of non-flatness connected to torsion. These new estimates provide optimal blowup rates of the energy when the curvature is concentrated (e.g., in a conical geometry). In the more subtle case of dipoles of concentrated curvature, we use the Burgers vector estimates to obtain an optimal blowup rate in terms of the size of the system. Our motivation comes from non-Euclidean elasticity, in which cones and curvature-dipoles play a central role. The lower bounds derived in this work directly yield lower bounds for the elastic energy of thin elastic sheets. The derivation of the curvature-based lower bound involves an isoperimetric inequality for framed loops, which we believe to be of independent interest.
title The Willmore energy and curvature concentration
topic Differential Geometry
Analysis of PDEs
49Q10, 49S05, 53C21, 53Z05, 74K20, 74K25
url https://arxiv.org/abs/2511.18982